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Multifunctional SiC@SiO2 Nanofiber Aerogel with Ultrabroadband Electromagnetic Wave Absorption

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TLDR
In this article , a multifunctional SiC@SiO2 nanofiber aerogel was fabricated with a 3D porous cross-linked structure through a simple chemical vapor deposition method and subsequent heat-treatment process.
Abstract
Traditional ceramic materials are generally brittle and not flexible with high production costs, which seriously hinders their practical applications. Multifunctional nanofiber ceramic aerogels are highly desirable for applications in extreme environments, however, the integration of multiple functions in their preparation is extremely challenging. To tackle these challenges, we fabricated a multifunctional SiC@SiO2 nanofiber aerogel (SiC@SiO2 NFA) with a three-dimensional (3D) porous cross-linked structure through a simple chemical vapor deposition method and subsequent heat-treatment process. The as-prepared SiC@SiO2 NFA exhibits an ultralow density (~ 11 mg cm- 3), ultra-elastic, fatigue-resistant and refractory performance, high temperature thermal stability, thermal insulation properties, and significant strain-dependent piezoresistive sensing behavior. Furthermore, the SiC@SiO2 NFA shows a superior electromagnetic wave absorption performance with a minimum refection loss (RLmin) value of - 50.36 dB and a maximum effective absorption bandwidth (EABmax) of 8.6 GHz. The successful preparation of this multifunctional aerogel material provides a promising prospect for the design and fabrication of the cutting-edge ceramic materials.

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Rational design of hierarchical yolk-double shell Fe@NCNs/MnO2 via thermal-induced phase separation toward wideband microwave absorption

TL;DR: In this paper , the thermal-induced phase separation engineering and redox strategy is employed to fabricate hierarchical yolk-double shell Fe@NCNs/MnO2, in which magnetic Fe units are individually confined in N-doped carbon nanocubes (NCNs) cavity and hierarchical MnO2 nanosheets are intimately anchored on NCNs surface.
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In situ construction of hierarchical core-shell SiCnws@SiO2-carbon foam hybrid composites with enhanced polarization loss for highly efficient electromagnetic wave absorption

TL;DR: In this paper , SiCnws/carbon foam composites with hierarchical structure were successfully prepared by chemical vapor deposition method, which achieved an optimal reflection loss value of −55.8 dB at 10.30 GHz and a wide effective absorption bandwidth of 3.97 GHz at 3.71 mm.
References
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Journal ArticleDOI

Chemistry of Aerogels and Their Applications

TL;DR: Aerogels form a new class of solids showing sophisticated potentialities for a range of applications, and can develop very attractive physical and chemical properties not achievable by other means of low temperature soft chemical synthesis.
Journal ArticleDOI

Biomimetic superelastic graphene-based cellular monoliths

TL;DR: It is reported that the marriage of graphene chemistry with ice physics can lead to the formation of ultralight and superelastic graphene-based cellular monoliths, which can sustain their structural integrity under a load of >50,000 times their own weight and can rapidly recover from >80% compression.
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Temperature dependent microwave attenuation behavior for carbon-nanotube/silica composites

TL;DR: In this paper, the authors evaluated the dielectric properties and microwave attenuation performances over the full X-band (8.2-12.4 GHz) at a wide temperature ranging from 100 to 500 °C.
Journal ArticleDOI

Shell thickness-dependent microwave absorption of core-shell Fe3O4@C composites.

TL;DR: By considering good chemical homogeneity and microwave absorption, it is believed the as-fabricated Fe3O4@C composites can be promising candidates as highly effective microwave absorbers.
Journal ArticleDOI

Ultralight nanofibre-assembled cellular aerogels with superelasticity and multifunctionality

TL;DR: This work reports a novel strategy to create fibrous, isotropically bonded elastic reconstructed (FIBER) NFAs with a hierarchical cellular structure and superelasticity by combining electrospun nanofibres and the fibrous freeze-shaping technique.
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